JP2003015915A - Automatic expansion method for storage device capacity - Google Patents

Automatic expansion method for storage device capacity

Info

Publication number
JP2003015915A
JP2003015915A JP2001204305A JP2001204305A JP2003015915A JP 2003015915 A JP2003015915 A JP 2003015915A JP 2001204305 A JP2001204305 A JP 2001204305A JP 2001204305 A JP2001204305 A JP 2001204305A JP 2003015915 A JP2003015915 A JP 2003015915A
Authority
JP
Japan
Prior art keywords
volume
segment
logical
capacity
storage device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
JP2001204305A
Other languages
Japanese (ja)
Other versions
JP4175788B2 (en
Inventor
Yoshiki Kano
義樹 加納
Manabu Kitamura
学 北村
Hiroharu Arai
弘治 荒井
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hitachi Ltd
Original Assignee
Hitachi Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hitachi Ltd filed Critical Hitachi Ltd
Priority to JP2001204305A priority Critical patent/JP4175788B2/en
Priority to US09/931,253 priority patent/US6725328B2/en
Publication of JP2003015915A publication Critical patent/JP2003015915A/en
Priority to US10/782,787 priority patent/US6836819B2/en
Priority to US10/991,421 priority patent/US7447832B2/en
Priority to US12/245,122 priority patent/US7930474B2/en
Application granted granted Critical
Publication of JP4175788B2 publication Critical patent/JP4175788B2/en
Priority to US12/876,325 priority patent/US8028127B2/en
Priority to US13/230,097 priority patent/US8266375B2/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/06Digital input from, or digital output to, record carriers, e.g. RAID, emulated record carriers or networked record carriers
    • G06F3/0601Interfaces specially adapted for storage systems
    • G06F3/0602Interfaces specially adapted for storage systems specifically adapted to achieve a particular effect
    • G06F3/0608Saving storage space on storage systems
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/06Digital input from, or digital output to, record carriers, e.g. RAID, emulated record carriers or networked record carriers
    • G06F3/0601Interfaces specially adapted for storage systems
    • G06F3/0602Interfaces specially adapted for storage systems specifically adapted to achieve a particular effect
    • G06F3/0604Improving or facilitating administration, e.g. storage management
    • G06F3/0605Improving or facilitating administration, e.g. storage management by facilitating the interaction with a user or administrator
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/06Digital input from, or digital output to, record carriers, e.g. RAID, emulated record carriers or networked record carriers
    • G06F3/0601Interfaces specially adapted for storage systems
    • G06F3/0628Interfaces specially adapted for storage systems making use of a particular technique
    • G06F3/0638Organizing or formatting or addressing of data
    • G06F3/0644Management of space entities, e.g. partitions, extents, pools
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/06Digital input from, or digital output to, record carriers, e.g. RAID, emulated record carriers or networked record carriers
    • G06F3/0601Interfaces specially adapted for storage systems
    • G06F3/0628Interfaces specially adapted for storage systems making use of a particular technique
    • G06F3/0662Virtualisation aspects
    • G06F3/0665Virtualisation aspects at area level, e.g. provisioning of virtual or logical volumes
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/06Digital input from, or digital output to, record carriers, e.g. RAID, emulated record carriers or networked record carriers
    • G06F3/0601Interfaces specially adapted for storage systems
    • G06F3/0668Interfaces specially adapted for storage systems adopting a particular infrastructure
    • G06F3/0671In-line storage system
    • G06F3/0683Plurality of storage devices
    • G06F3/0689Disk arrays, e.g. RAID, JBOD

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  • Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Information Retrieval, Db Structures And Fs Structures Therefor (AREA)

Abstract

PROBLEM TO BE SOLVED: To determine the storage area of a storage device not uniquely but dynamically. SOLUTION: In this invented system, the logical block address of a read or write I/O that accesses from a host to a logical volume of the storage device is monitored. The storage area of the logical volume is dynamically extended based on the acquired logical block address. Besides, the storage area of the logical volume is shrinked/extended according to the instruction, that is issued from an instruction part of the host to a volume server, on shrinkage/extension of the logical volume capacity.

Description

【発明の詳細な説明】Detailed Description of the Invention

【0001】[0001]

【発明の属する技術分野】本発明は、記憶装置システム
において、オンライン中に逐次容量拡張を行う方法に関
する。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a method for sequentially expanding capacity while online in a storage device system.

【0002】[0002]

【従来の技術】近年、複数のホスト計算機の記憶領域を
一つの記憶装置に記憶する動きが盛んになっている。こ
の動きを促している記憶装置の代表的なものとして、デ
ィスクアレイがある。ディスクアレイは装置内部で複数
の磁気ディスク記憶装置によって記憶領域の冗長性を持
たせることにより信頼性を高め、必要な容量の記憶領域
を論理ボリュームとして複数のホストへ提供する。この
ディスクアレイを用いたときの大きな利点の一つとし
て、論理ボリュームの容量拡張ができる点が挙げられ
る。
2. Description of the Related Art In recent years, the movement of storing the storage areas of a plurality of host computers in one storage device has become popular. A disk array is a typical storage device that promotes this movement. The disk array enhances reliability by providing redundancy of a storage area with a plurality of magnetic disk storage devices inside the apparatus, and provides a storage area having a required capacity as logical volumes to a plurality of hosts. One of the great advantages of using this disk array is that the capacity of the logical volume can be expanded.

【0003】例えば、計算機がディスクアレイによって
提供された論理ボリュームを使い切った場合、ディスク
アレイ内部の未使用領域を任意長で切り出した論理ボリ
ュームとして割り当て、計算機がこの論理ボリュームを
使用中の論理ボリュームと結合することにより記憶領域
を拡張できる。この機能はオンライン中にもボリューム
の拡張ができるため、オンラインボリューム拡張と呼ば
れる。オンラインボリューム拡張により、時々刻々と増
大するデータに対して論理ボリュームの記憶領域の範囲
をアプリケーション無停止で拡張するので、アプリケー
ションの稼動時間を拡大できる。また、ボリューム容量
移行時にボリューム間データ移行を行う必要もないので
ストレージの管理コストを大幅に削減できる。
For example, when a computer runs out of a logical volume provided by a disk array, an unused area inside the disk array is allocated as a logical volume cut out at an arbitrary length, and the computer defines this logical volume as a logical volume in use. The storage area can be expanded by combining them. This function is called online volume expansion because it can expand the volume while online. With the online volume expansion, the range of the storage area of the logical volume is expanded without stopping the application with respect to the data that increases every moment, so that the operating time of the application can be expanded. In addition, since there is no need to perform data migration between volumes when migrating volume capacity, storage management costs can be significantly reduced.

【0004】[0004]

【発明が解決しようとする課題】従来、論理ボリューム
利用者はオンラインボリューム拡張をするためには論理
ボリューム提供者に連絡して拡張を施さなければならな
い。一つの企業内で利用するような小規模のサイトでは
逼迫したデータの増加が無いため随時オンラインボリュ
ーム拡張をする必要がないが、データセンタなどの複数
企業が共同で利用するような大規模のサイトでは、急激
なデータの増加が複数企業の計算機から生じる可能性が
あり、随時オンラインボリューム拡張を行う必要性があ
る。加えて、ディスクアレイなどの記憶領域の利用効率
を高めるために、1つの記憶装置で無駄なく複数利用者
にボリュームを提供しなけばならない。
Conventionally, a logical volume user must contact a logical volume provider to perform online volume expansion. For small sites such as those used within a single company, there is no tight data increase, so there is no need to expand the online volume at any time, but large sites such as data centers that are used jointly by multiple companies Therefore, there is a possibility that a rapid increase in data will occur from computers of multiple companies, and it is necessary to expand the online volume at any time. In addition, in order to improve the utilization efficiency of a storage area such as a disk array, one storage device must provide volumes to a plurality of users without waste.

【0005】記憶装置の記憶領域を無駄なく利用するた
めには、記憶領域を小さい容量の論理ボリュームの単位
で管理して、拡張の度に小さい容量の論理ボリュームで
論理ボリュームの拡張を行わなければならない。このよ
うな状況下でオンラインボリューム拡張を利用する際、
時々刻々と増大するデータにより複数の利用者からオン
ラインボリューム拡張の要求が同時発生して、論理ボリ
ューム提供者が対応仕切れない場合がある。最悪の場
合、オンラインボリューム拡張ができずに計算機の処理
停止を余儀なくされるという問題がある。
In order to use the storage area of the storage device without waste, the storage area must be managed in units of small logical volumes and the logical volume must be expanded with a small logical volume each time expansion is performed. I won't. When using online volume expansion under such circumstances,
There is a case where the online volume expansion requests are simultaneously made by a plurality of users due to the ever-increasing amount of data, and the logical volume provider cannot handle the request. In the worst case, there is a problem that the online volume expansion cannot be performed and the processing of the computer must be stopped.

【0006】論理ボリューム利用者は記憶領域を管理す
ることなく、無限の記憶容量を要求する。一方、論理ボ
リューム提供者は、論理ボリューム利用者が記憶領域を
どのように利用するかを考えることなく、記憶領域を効
率よく管理を行い、より迅速に利用者へ提供することを
要求する。
A logical volume user requests an unlimited storage capacity without managing the storage area. On the other hand, the logical volume provider demands efficient management of the storage area and prompt provision to the user without considering how the logical volume user uses the storage area.

【0007】本発明の目的は、記憶資源の利用者と提供
者の要求を解決するために、記憶領域を管理する装置に
よって、計算機のオンライン中に、一元的に管理された
記憶領域から動的に適切な容量の記憶領域を割り当てる
ことによって論理ボリュームを拡張することにある。
An object of the present invention is to enable a device for managing a storage area to dynamically change the storage area from a centrally managed storage area by a device for managing the storage area in order to solve the requirements of users and providers of the storage resources. This is to expand the logical volume by allocating a storage area of an appropriate capacity to the.

【0008】[0008]

【課題を解決するための手段】本発明の計算機システム
は、1台ないし複数のホスト計算機、1台ないし複数のデ
ィスク記憶装置、そして、ボリューム提供装置が相互接
続された構成をとる。複数のディスク記憶装置を管理す
るボリューム提供装置は、複数のディスク記憶装置から
個々のホスト計算機に対応する論理ボリュームを提供す
る。ホスト計算機は論理ボリュームへI/O要求を送
り、ボリューム提供部はI/O要求のリードやライトが
行われる論理ブロックアドレスを読み取り、論理ボリュ
ーム上にI/O要求がアクセスした論理ブロックアドレ
スの記憶領域が存在しない場合、ボリューム提供装置が
未使用磁気ディスク記憶装置から記憶領域を割り当て、
動的に論理ボリュームの記憶領域を拡張する。また、ア
プリケーションの指示による任意量での論理ボリューム
を縮小する。
The computer system of the present invention has a configuration in which one or a plurality of host computers, one or a plurality of disk storage devices, and a volume providing device are interconnected. A volume providing device that manages a plurality of disk storage devices provides a logical volume corresponding to each host computer from the plurality of disk storage devices. The host computer sends an I / O request to the logical volume, the volume provider reads the logical block address from which the I / O request is read or written, and stores the logical block address accessed by the I / O request on the logical volume. If the area does not exist, the volume providing device allocates the storage area from the unused magnetic disk storage device,
Dynamically expand the storage area of a logical volume. Further, the logical volume is reduced by an arbitrary amount according to the instruction of the application.

【0009】[0009]

【発明の実施の形態】<第一の実施例>以下に、発明の
実施例を図面を用いて説明する。
BEST MODE FOR CARRYING OUT THE INVENTION <First Embodiment> An embodiment of the present invention will be described below with reference to the drawings.

【0010】図1に本発明を適用した計算機システムの
構成例を示す。本計算機システムは、複数のホスト11
00、ボリュームサーバ1200、複数の磁気ディスク
記憶装置1300から構成される。本実施例では、ホス
ト1100が1台、磁気ディスク記憶装置1300が3台
となっているが、1台ないし複数台あってもよい。ま
た、ホスト1100、ボリュームサーバ1200、そし
て、磁気ディスク記憶装置1300はCPU、メモリ等
を有するが、本発明の実施例の説明に関係がないため説
明を省略する。
FIG. 1 shows an example of the configuration of a computer system to which the present invention is applied. This computer system includes a plurality of hosts 11
00, a volume server 1200, and a plurality of magnetic disk storage devices 1300. In this embodiment, there is one host 1100 and three magnetic disk storage devices 1300, but there may be one or more. Further, the host 1100, the volume server 1200, and the magnetic disk storage device 1300 have a CPU, a memory, etc., but since they are not related to the description of the embodiment of the present invention, their explanations are omitted.

【0011】ホスト1100は、アプリケーション(A
pp)1110、オペレーティングシステム(以下O
S)1130、そして、チャネルインターフェイス11
40を有する。アプリケーション1110は、ボリュー
ム提供装置であるボリュームサーバ1200から提供さ
れるボリュームをリード処理、ライト処理するDBやファ
イルシステム等の応用ソフトウエアである。オペレーテ
ィングシステム1130は、アプリケーション1110
からのI/O要求を受け取りチャネルインターフェイス
(I/F)1140へ転送するボリュームデバイス部
(rsd0)1131と命令部1132から構成される。O
S1130の命令部1132は、OS1130が使用す
る記憶装置の開始ブロック位置と終了ブロック位置等か
ら構成される論理区画情報の管理とボリュームサーバ1
200の動作制御を行うソフトウエアである。
The host 1100 uses the application (A
pp) 1110, operating system (hereinafter O
S) 1130 and the channel interface 11
40. The application 1110 is application software such as a DB or a file system that performs read processing and write processing of a volume provided from the volume server 1200 that is a volume providing device. The operating system 1130 is an application 1110.
A volume device unit (rsd0) 1131 for receiving an I / O request from the device and transferring it to a channel interface (I / F) 1140 and a command unit 1132. O
The command unit 1132 of S1130 manages the logical partition information including the starting block position and the ending block position of the storage device used by the OS1130, and the volume server 1.
It is software for controlling the operation of the device 200.

【0012】ボリュームサーバ1200から提供される
記憶領域である論理ボリュームを示す図4を用いて論理
区画情報4100について説明する。本実施例では動的
にボリュームを拡張するために、OS1130が扱う論
理区画情報の開始ブロック位置は0LBA(4200)
で示し、また終了ブロック位置は記憶装置のOSがサポー
トする最大記憶装置の容量もしくはユーザが利用する記
憶容量を示す。もし、最大容量がユーザの利用する記憶
容量によって制限された場合、ボリュームサーバ120
0によって提供される論理ボリュームの記憶領域もこの
終了ブロック位置によって制限される。また、論理区画
情報はOS1130の管理下にある記憶装置において開
始ブロック位置0LBA(4200)から論理区画情報
の保管に必要な領域(4100)分のLBAまでに保管
される。通常の保管されるデータは論理区画情報以外の
記憶領域(4400)に保管される。
The logical partition information 4100 will be described with reference to FIG. 4 showing a logical volume which is a storage area provided by the volume server 1200. In this embodiment, since the volume is dynamically expanded, the start block position of the logical partition information handled by the OS 1130 is 0LBA (4200).
The end block position indicates the maximum storage capacity supported by the OS of the storage apparatus or the storage capacity used by the user. If the maximum capacity is limited by the storage capacity used by the user, the volume server 120
The storage area of the logical volume provided by 0 is also limited by this end block position. Further, the logical partition information is stored in the storage device under the control of the OS 1130 from the starting block position 0LBA (4200) to the LBA for the area (4100) required for storing the logical partition information. Ordinarily stored data is stored in a storage area (4400) other than the logical partition information.

【0013】図1に示すチャネルI/F1140は、O
S1130からのI/Oを外部デバイスへ転送する機能
を有するデバイスであり、ファイバチャネルI/FやS
CSI I/FなどのブロックデバイスI/Fである。
The channel I / F 1140 shown in FIG.
A device having a function of transferring I / O from the S1130 to an external device, such as a fiber channel I / F or S
A block device I / F such as a CSI I / F.

【0014】ホスト1100とボリュームサーバ120
0間並びにボリュームサーバ1200とディスク130
0間を制御するコマンドはI/O要求と呼ばれる。I/
O要求はSCSIプロトコルなどのブロックデバイスプ
ロトコルのコマンドである。図17にI/O要求のコマ
ンドフォーマットを示す。I/O要求は、オペレーショ
ンコード17001、LUN(Logical Unit Number)1
7002、LBA(Logical Block Address)1700
3、転送データ長17004を持つ。オペレーションコ
ード17001は、リード処理、ライト処理等を示す番
号である。LUN17002は、コマンドが処理を行う
論理ボリュームの一意な番号である。LBA17003
はボリュームサーバ1200から提供される論理ボリュ
ーム上の処理を行う位置である。転送データ長1700
4は、本I/O要求で一度に処理される量である。
The host 1100 and the volume server 120
0 and volume server 1200 and disk 130
The command that controls between 0s is called an I / O request. I /
The O request is a command of a block device protocol such as the SCSI protocol. FIG. 17 shows the command format of the I / O request. The I / O request is operation code 17001, LUN (Logical Unit Number) 1
7002, LBA (Logical Block Address) 1700
3. Has a transfer data length of 17004. The operation code 17001 is a number indicating read processing, write processing, and the like. The LUN 17002 is a unique number of the logical volume processed by the command. LBA17003
Is a position for performing processing on the logical volume provided from the volume server 1200. Transfer data length 1700
4 is the amount processed at one time by this I / O request.

【0015】ボリュームサーバ1200は、ホスト側の
チャネルI/F1210、ホスト1100から要求され
たI/O要求の処理と磁気ディスク記憶装置1300の
管理を行うボリューム提供部1230、そして、ボリュ
ーム提供部1230が要求するI/O要求を磁気ディス
ク記憶装置1300へ転送するチャネルI/F1220
から構成される。ホスト側のチャネルI/F1200
は、ホスト1100と接続可能なファイバチャネルI/
FやSCSIなどのブロックデバイスI/Fである。本
実施例ではホスト1100側と磁気ディスク記憶装置1
300側のチャネルは分離しているが、ホスト1100
側のチャネルI/F1210と磁気ディスク記憶装置1
300側のチャネルI/F1220は共有していてもよ
い。
The volume server 1200 includes a channel I / F 1210 on the host side, a volume providing unit 1230 that processes an I / O request requested by the host 1100 and manages the magnetic disk storage device 1300, and a volume providing unit 1230. Channel I / F 1220 for transferring the requested I / O request to the magnetic disk storage device 1300
Composed of. Host side channel I / F 1200
Is a Fiber Channel I / A connectable to the host 1100.
It is a block device I / F such as F or SCSI. In this embodiment, the host 1100 side and the magnetic disk storage device 1
The channel on the 300 side is separated, but the host 1100
Side channel I / F 1210 and magnetic disk storage device 1
The channel I / F 1220 on the 300 side may be shared.

【0016】また、このボリュームサーバ1200はホ
スト1100に対して無尽蔵の容量を持つ論理ボリュー
ムを提供する。つまり、ホスト1100からボリューム
サーバ1200を見たときにボリュームの範囲を決定す
る論理ブロック番号(LBA)の開始値は0と決まって
いるが、範囲の終了値であるLBAは規定しなくてもよ
い。また、範囲の終了値のLBAを規定した場合、その
値がボリュームサーバ1200から提供されるボリュー
ムの最大容量となる。
The volume server 1200 also provides the host 1100 with a logical volume having an inexhaustible capacity. That is, when the volume server 1200 is viewed from the host 1100, the start value of the logical block number (LBA) that determines the volume range is set to 0, but the end value of the range, LBA, need not be specified. . Further, when the LBA of the end value of the range is specified, that value becomes the maximum capacity of the volume provided from the volume server 1200.

【0017】ボリュームサーバ1200内のボリューム
提供部1230は、I/O監視部1231、容量増減部
1232、セグメント管理部1233、I/O処理部1
234、そして、物理論理アドレス管理部1235から
構成される。セグメント管理部1233は、セグメント
管理表2000を内部に持ち、このセグメント管理表2
000を使用してボリュームサーバ1200によって提
供されるボリュームの記憶領域の管理を行っている。
The volume providing unit 1230 in the volume server 1200 includes an I / O monitoring unit 1231, a capacity increasing / decreasing unit 1232, a segment managing unit 1233, and an I / O processing unit 1.
234 and a physical / logical address management unit 1235. The segment management unit 1233 has a segment management table 2000 inside, and this segment management table 2
000 is used to manage the storage area of the volume provided by the volume server 1200.

【0018】図2のセグメント管理表2000は、ディ
スク番号(Disk ID)2100、セグメント番号
(Segment Number)2200、開始LBA
(LBA(START))2300、セグメントの大き
さ(Size)2400とそのセグメントの利用状況
(In−Use)2500の値を持つ。ディスクID2
100は、磁気ディスク記憶装置1300がボリューム
サーバ1200に接続された際にSCSI等のブロック
レベルプロトコルによって決定されたディスクの一意な
識別番号である。セグメントは、個々の磁気ディスク記
憶装置1300内で分けられたボリュームサーバ120
0で管理される記憶領域の最小単位であり、セグメント
番号2200はボリュームサーバ1200でセグメント
を管理するための一意な識別番号である。LBA(ST
ART)2300はディスクID2100の磁気ディス
ク記憶装置1300内でセグメントの記憶領域が開始す
る物理位置を規定する。セグメントの大きさはディスク
内のLBA(START)2300から始まる記憶領域
の大きさを示す。セグメントの利用状況はセグメントの
記憶領域がボリュームサーバ1200によって使用され
ているか未使用であるかを2つの値によって示す。使用
中の場合は1、または未使用の場合は0の値によって利
用状況を示す。
The segment management table 2000 of FIG. 2 shows a disk number (Disk ID) 2100 and a segment number.
(Segment Number) 2200, start LBA
It has values of (LBA (START)) 2300, segment size (Size) 2400, and usage status (In-Use) 2500 of the segment. Disk ID 2
100 is a unique identification number of a disk determined by a block level protocol such as SCSI when the magnetic disk storage device 1300 is connected to the volume server 1200. The segment is a volume server 120 divided in each magnetic disk storage device 1300.
The segment number 2200 is the minimum unit of the storage area managed by 0, and the segment number 2200 is a unique identification number for managing the segment in the volume server 1200. LBA (ST
ART) 2300 defines the physical position where the storage area of the segment starts in the magnetic disk storage device 1300 of disk ID 2100. The size of the segment indicates the size of the storage area starting from LBA (START) 2300 in the disc. The usage status of the segment indicates whether the storage area of the segment is used or unused by the volume server 1200 by two values. The use status is indicated by a value of 1 when it is in use or 0 when it is not in use.

【0019】次に、物理論理アドレス管理部1235で
はボリュームサーバ1200によって提供される論理ボ
リュームとデータが保管される磁気ディスク記憶装置1
300との間の物理論理アドレス管理を行う。この論理
ボリュームと実データが存在する磁気ディスク記憶装置
1300を管理する手段として、物理論理アドレス管理
部1235内に図3の物理論理管理表3000をもつ。
物理論理管理表3000は論理ユニット番号(LUN)3
100、セグメント番号(Segment Number)3200、
LUN LBA(START)3300、そして、LU
N LBA(END)3400が管理される。LUN310
0は論理ユニット番号と呼ばれ、ボリュームサーバ12
00からホスト1100へ提供される論理ボリュームの
一意な番号である。セグメント番号3200はセグメン
ト管理部1233で管理されている記憶領域の一意な番
号である。LUN3100により提供される論理ボリュ
ームは複数のセグメントから構成され、論理ボリューム
の論理ブロック番号(LBA)は物理論理管理表3000
の個々のLUN3100内で若いセグメントのLBAから
古いセグメントのLBAの順に連続して結合されている。
Next, the physical logical address management unit 1235 stores the logical volume and data provided by the volume server 1200 in the magnetic disk storage device 1.
It manages physical and logical addresses with 300. As a means for managing this logical volume and the magnetic disk storage device 1300 in which the actual data exists, the physical / logical address management unit 1235 has the physical / logical management table 3000 of FIG.
The physical logical management table 3000 shows logical unit number (LUN) 3
100, Segment Number 3200,
LUN LBA (START) 3300 and LU
The N LBA (END) 3400 is managed. LUN310
0 is called a logical unit number, and volume server 12
This is a unique number of the logical volume provided from 00 to the host 1100. The segment number 3200 is a unique number of the storage area managed by the segment management unit 1233. The logical volume provided by the LUN 3100 is composed of a plurality of segments, and the logical block number (LBA) of the logical volume is the physical logical management table 3000.
In each LUN 3100 of the above, the LBA of the young segment to the LBA of the old segment are sequentially combined.

【0020】例えば、図3でLUN0(3500)の時
にセグメント番号1(3510)、セグメント番号2
(3520)、セグメント番号3(3530)の順に結
合され、図4のようにLUN0(4000)の 単一論
理ボリュームとしてホスト1100に提供される。LU
N LBA(START)3300はLUN内でセグメ
ントが使用するLBAの開始位置が示されている。LU
N LBA(END)3400はLUN内でセグメント
が使用するLBAの終了位置が示されている。I/O監
視部1231は、ホスト1100から磁気ディスク記憶
装置1300へアクセスされる個々のI/O要求内のLB
Aを監視する。I/O処理部1234は実際のリード/
ライトのI/O処理を行う。容量増減部1232は、I
/O監視部1231もしくはホスト1100の命令部1
132から要求された容量の増減処理を行う。
For example, in the case of LUN0 (3500) in FIG. 3, segment number 1 (3510) and segment number 2
(3520) and segment number 3 (3530) are combined in this order and provided to the host 1100 as a single logical volume of LUN 0 (4000) as shown in FIG. LU
N LBA (START) 3300 indicates the start position of the LBA used by the segment in the LUN. LU
N LBA (END) 3400 shows the end position of the LBA used by the segment in the LUN. The I / O monitoring unit 1231 uses the LB in each I / O request accessed from the host 1100 to the magnetic disk storage device 1300.
Monitor A. The I / O processing unit 1234 uses the actual read /
Write I / O processing is performed. The capacity increasing / decreasing unit 1232
/ O monitoring unit 1231 or command unit 1 of host 1100
The capacity increase / decrease processing requested by 132 is performed.

【0021】本実施例では、ボリュームサーバ1200
が独立した装置として配置されているが、磁気ディスク
記憶装置1300にボリュームサーバ1200の機能を
組み込んでもよい。
In this embodiment, the volume server 1200
Are arranged as independent devices, but the function of the volume server 1200 may be incorporated in the magnetic disk storage device 1300.

【0022】また、本実施例ではセグメント単位でボリ
ューム拡張を行っているが、セグメント管理部1233
と物理論理アドレス管理部1235を例えば、Log
Structuredファイルシステム等の容量拡張可
能なファイルシステムとして見なすと、セグメント管理
表2000と物理論理管理表300内の記憶領域の最小
単位であるセグメントをファイルシステムの記憶領域の
最小単位であるブロックと置き換え、ファイルシステム
のファイルをボリュームサーバ1200より提供される
LUN3100が付けられた論理ボリュームと見なすこ
とができる。つまり、セグメント管理部1233と物理
論理アドレス管理部1235をファイルシステムに置き
換えても、ブロック単位で動的に拡張可能な論理ボリュ
ームを提供できる。 (動作の説明)次に、ボリュームサーバ1200の動作
を図5を用いて説明をする。ホスト1100からボリュ
ームサーバ1200へI/O要求が発行された後(ステ
ップ5001)、ボリュームサーバ1200は受信した
I/O要求の処理をボリューム提供部1230で行う
(ステップ5002)。I/O要求の処理が終了すると
I/O要求の処理完了通知をホスト1100へ発行する
(ステップ5003)。ホストはI/O完了通知を受信
して(ステップ5004)、処理を終了する。ボリュー
ムサーバ1200のボリューム提供部1230は一見す
ると従来の磁気ディスク記憶装置1300の制御部と同
じ動作に見えるが、ボリュームを無限に拡張する機構が
施されている。以下では、この機構が備わっているボリ
ューム提供部1230の内部動作を説明する。
In this embodiment, the volume is expanded in units of segments, but the segment management unit 1233 is used.
And the physical logical address management unit 1235, for example, Log
Considered as a capacity-expandable file system such as a Structured file system, the segment which is the minimum unit of the storage area in the segment management table 2000 and the physical logical management table 300 is replaced with a block which is the minimum unit of the storage area of the file system, The file of the file system can be regarded as a logical volume provided with the LUN 3100 provided by the volume server 1200. That is, even if the segment management unit 1233 and the physical logical address management unit 1235 are replaced with a file system, a logical volume that can be dynamically expanded in block units can be provided. (Explanation of Operation) Next, the operation of the volume server 1200 will be described with reference to FIG. After an I / O request is issued from the host 1100 to the volume server 1200 (step 5001), the volume server 1200 processes the received I / O request by the volume providing unit 1230 (step 5002). When the processing of the I / O request is completed, the processing completion notification of the I / O request is issued to the host 1100 (step 5003). The host receives the I / O completion notification (step 5004) and ends the processing. The volume providing unit 1230 of the volume server 1200 looks like the same operation as the control unit of the conventional magnetic disk storage device 1300 at first glance, but is provided with a mechanism for expanding the volume infinitely. The internal operation of the volume providing unit 1230 equipped with this mechanism will be described below.

【0023】ボリューム提供部1230は、I/O監視
部1231、I/O処理部1234、物理論理アドレス
管理部1235、容量増減部1232、そして、セグメ
ント管理部1233の連携により動作する。図1のボリ
ューム提供部1230の拡大図1236内の太い線はI
/O要求の流れを表し、細い線は制御の流れを示す。ま
ず、ホスト 側I/F1210から流されたI/O要求
はI/O監視部1231で処理され、その後I/O処理
部1234で個々のI/O要求のLBAを物理論理変換
した後、個々の磁気ディスク記憶装置1300に対して
リード/ライト処理が行われる。この処理の流れに従い
個々の部について説明する。
The volume providing unit 1230 operates in cooperation with the I / O monitoring unit 1231, the I / O processing unit 1234, the physical logical address management unit 1235, the capacity increasing / decreasing unit 1232, and the segment management unit 1233. The thick line in the enlarged view 1236 of the volume providing unit 1230 of FIG.
A thin line indicates a control flow. First, the I / O request sent from the host-side I / F 1210 is processed by the I / O monitoring unit 1231. After that, the I / O processing unit 1234 performs physical / logical conversion on the LBA of each I / O request and then The read / write processing is performed on the magnetic disk storage device 1300. Each part will be described according to the flow of this processing.

【0024】I/O監視部1231の動作について図6
を用いて説明する。各LUNにおける論理ボリュームの
既存の確保領域容量は図3の物理論理管理表3000の
セグメント番号と各セグメントのサイズ2400が記載
されている図2のセグメント管理表2000よりLUN
内の各セグメントのサイズ2400を合算して計算する
(ステップ6001)。ホスト1100からのI/O要
求が送られるとI/O要求が論理ボリューム上のアクセ
スされるLBAを検出する(ステップ6002)。アク
セスされるLBAより確保されている領域が大きい場合
(ステップ6003)、物理論理アドレス管理部123
5へI/O処理を要求する(ステップ6005)。アク
セスされるLBAより確保されている領域が小さい場合
(ステップ6003)、容量増減部1232へ容量確保
の要求を行い(ステップ6004)、I/O処理部12
34へI/O処理を要求(ステップ6005)する。
Operation of the I / O monitor 1231 is shown in FIG.
Will be explained. The existing reserved area capacity of the logical volume in each LUN is the LUN from the segment management table 2000 of FIG. 2 in which the segment number of the physical logical management table 3000 of FIG. 3 and the size 2400 of each segment are described.
The sizes 2400 of the respective segments are summed up and calculated (step 6001). When the I / O request is sent from the host 1100, the I / O request detects the accessed LBA on the logical volume (step 6002). When the secured area is larger than the accessed LBA (step 6003), the physical logical address management unit 123
5 to request I / O processing (step 6005). If the secured area is smaller than the LBA to be accessed (step 6003), a capacity securing request is issued to the capacity increasing / decreasing unit 1232 (step 6004), and the I / O processing unit 12
A request for I / O processing is issued to 34 (step 6005).

【0025】次に、容量増減部1232の処理動作につ
いて図7を用いて説明する。I/O監視部1231から
の要求とホスト1100の命令部1132からの要求と
で動作が異なる。まず、I/O監視部1231からの動
作について説明する。I/O監視部1231から容量増
加の命令が要求される(ステップ7001)とボリュー
ム増加処理(ステップ7002)を行い、処理を終了す
る。一方、ホスト1100の命令部1132から全容量
の中からmLBA分の容量減少の命令が要求されると
(ステップ7001)、mLBA分のボリューム減少処
理を行う(ステップ7003)。
Next, the processing operation of the capacity increasing / decreasing unit 1232 will be described with reference to FIG. The operation differs between the request from the I / O monitoring unit 1231 and the request from the command unit 1132 of the host 1100. First, the operation from the I / O monitoring unit 1231 will be described. When a capacity increase command is requested from the I / O monitoring unit 1231 (step 7001), volume increase processing (step 7002) is performed, and the processing ends. On the other hand, when the command unit 1132 of the host 1100 requests a capacity reduction command for mLBA from the total capacity (step 7001), volume reduction processing for mLBA is performed (step 7003).

【0026】ボリューム増加処理(ステップ 700
2)では、セグメント管理部1233と物理論理アドレ
ス管理部1235と連携して次の処理が行われる(図
8)。まず、セグメント管理部1233へ未使用セグメ
ントの取得要求をセグメント番号パラメータSN=−1
として行う(ステップ 8001)。セグメント管理部
1233では、要求されたセグメントが存在する場合セ
グメント番号パラメータSNにセグメント番号(SN>
=0)を入れて戻し、要求されたセグメントが存在しな
い場合SN=−1を戻す(ステップ8002)。セグメ
ント番号を受け取った容量増減部1232はセグメント
番号パラメータSNが正数であるか否かを判別する(ス
テップ8003)。SN>=0の場合には処理を継続
し、SN<0の場合はエラーを戻し(ステップ 800
6)、処理を終了する。容量増減部1232ではセグメ
ント管理部1233より取得したセグメント番号SNを
元に物理論理アドレス管理部1235へボリューム結合
要求をする(ステップ8004)。物理論理アドレス管
理部1235では、セグメント番号を元に物理論理管理
表3000へ目的のLUNである論理ボリュームの最後
尾セグメントに対してセグメントを結合して(ステップ
8005)、処理を終了する。この物理論理アドレス管
理部1235の具体的な動作については後述する。
Volume increase processing (step 700)
In 2), the following processing is performed in cooperation with the segment management unit 1233 and the physical logical address management unit 1235 (FIG. 8). First, an acquisition request for an unused segment is sent to the segment management unit 1233 with a segment number parameter SN = -1.
(Step 8001). In the segment management unit 1233, if the requested segment exists, the segment number parameter SN is set to the segment number (SN>
= 0) and return SN = −1 if the requested segment does not exist (step 8002). The capacity increasing / decreasing unit 1232 having received the segment number determines whether the segment number parameter SN is a positive number (step 8003). If SN> = 0, the process is continued, and if SN <0, an error is returned (step 800
6), the process ends. The capacity increase / decrease unit 1232 makes a volume combination request to the physical / logical address management unit 1235 based on the segment number SN acquired from the segment management unit 1233 (step 8004). The physical / logical address management unit 1235 joins the segment to the last segment of the logical volume, which is the target LUN, in the physical / logical management table 3000 based on the segment number (step 8005) and ends the process. The specific operation of this physical logical address management unit 1235 will be described later.

【0027】一方、ボリューム減少処理(ステップ 7
003)は次の処理が行われる(図9)。縮小容量がm
LBAの時、縮小後の論理ボリューム領域が存在しない
一つもしくは複数のセグメント番号を物理論理管理表3
000から取得する(ステップ9001)。セグメント
取得手順としては、まず、物理論理管理表3000より
終了LBA(3400)よりLBA(END)−mとし
て縮小後のLBA算出する。この縮小後のLBAを元に
して目的のLUN上で縮小後のLBAと重複していない
一つないし複数のセグメント番号(SN)を取得する。
On the other hand, volume reduction processing (step 7)
003), the following processing is performed (FIG. 9). Reduction capacity is m
In the case of LBA, one or more segment numbers in which the reduced logical volume area does not exist are recorded in the physical logical management table 3
000 (step 9001). As the segment acquisition procedure, first, the reduced LBA is calculated as LBA (END) -m from the end LBA (3400) from the physical logical management table 3000. Based on the reduced LBA, one or a plurality of segment numbers (SN) that do not overlap with the reduced LBA are acquired on the target LUN.

【0028】次に、これらのセグメントを物理論理アド
レス管理部1235へセグメントの返還要求を行う(ス
テップ9002)。物理論理アドレス管理部1235は
受け取ったセグメントを物理論理管理表3000上のL
UNで指定される論理ボリュームのリストからセグメン
ト番号と一致する列(SN3200、LBA(STAR
T)3300、LBA(END)3400)を切り離す
(ステップ9003)。容量増減部1232はセグメン
ト管理部1233へ切り離されたセグメント番号SNを
未使用セグメントとして管理するように命令する(ステ
ップ9004)。セグメント管理部1233では、切り
離されたセグメントを未使用セグメントとして管理する
(ステップ9005)。ホスト1100に論理ボリュー
ムが切り離されたことを通知する(ステップ900
6)。以上で、ボリューム縮小の処理手順を終了する。
Next, a segment return request for these segments is made to the physical logical address management unit 1235 (step 9002). The physical / logical address management unit 1235 sets the received segment to L in the physical / logical management table 3000.
A column (SN3200, LBA (STAR) that matches the segment number from the list of logical volumes specified by UN
(T) 3300 and LBA (END) 3400) are separated (step 9003). The capacity increasing / decreasing unit 1232 commands the segment managing unit 1233 to manage the separated segment number SN as an unused segment (step 9004). The segment management unit 1233 manages the separated segment as an unused segment (step 9005). Notify the host 1100 that the logical volume has been disconnected (step 900)
6). This is the end of the volume reduction processing procedure.

【0029】セグメント管理部1233は、容量増減部
1232より命令を受けたときに、セグメント管理表2
000に記載されているセグメントの使用状況の管理と
セグメント追加・削除の管理する。セグメント使用状況
の管理は前述したセグメント管理表2000の管理手順
に従う。
When the segment management unit 1233 receives a command from the capacity increase / decrease unit 1232, the segment management table 2
The management of the usage status of the segment described in No. 000 and the addition / deletion of the segment are managed. The management of the segment usage status follows the management procedure of the segment management table 2000 described above.

【0030】セグメント使用状況の管理の動作につい
て、図10を用いて説明する。まず、容量増減部123
2よりボリューム増減要求が引き数のセグメント番号と
共に渡される。セグメント番号<0のとき 未使用セグ
メント取得要求と判断され(ステップ10001)、ス
テップ10002へ処理を続ける。未使用セグメント取
得要求は、未使用ボリュームが存在の可否をセグメント
管理表2000を用いて調べる(ステップ1000
2)。未使用ボリュームが無ければ(ステップ1000
2)、エラーとして容量増減部1232へ通知する(ス
テップ10005)。未使用セグメントが存在する場合
(ステップ10002)、未使用セグメントのセグメン
ト番号を容量増減部1232へ戻す(ステップ1000
3)。そして、セグメント管理表のセグメントに対応す
る使用状況を、使用中を示す1に変更して(ステップ1
0004)、ステップ10007に進む。一方、セグメ
ント番号>=0の時(ステップ10001)、セグメン
トの未使用状態へ移す動作と判断され、ステップ100
06で処理を継続する。ステップ10006でセグメン
ト管理表2000よりセグメント番号に対応する使用状
況を未使用の0にして、ステップ10006に進む。ス
テップ10007では、セグメント管理表2000の利
用状態2400の項目を用いて使用中セグメントの数と
全セグメント数よりセグメントの利用率(使用中セグメ
ント数/全セグメント数)を計算して、利用率が90%
以上の可否を判別する。90%以上の場合、保守員に磁
気ディスク記憶装置1300の追加を依頼して(ステッ
プ10008)、処理を終了する。利用率が90%以下
の場合はそのまま処理を終了する。利用率のしきい値で
ある90%は、保守員がシステムの信頼性に応じて可変
に変更できるものとする。以上で、セグメント管理部1
233のボリューム使用状況管理の動作についての説明
を終了する。
The operation of managing the segment usage status will be described with reference to FIG. First, the capacity increasing / decreasing unit 123
The volume increase / decrease request is passed from 2 together with the segment number of the argument. When segment number <0, it is determined that the request is an unused segment acquisition request (step 10001) and the process is continued to step 10002. The unused segment acquisition request uses the segment management table 2000 to check whether an unused volume exists (step 1000).
2). If there is no unused volume (step 1000)
2) The capacity increase / decrease unit 1232 is notified as an error (step 10005). When there is an unused segment (step 10002), the segment number of the unused segment is returned to the capacity increase / decrease unit 1232 (step 1000).
3). Then, the usage status corresponding to the segment in the segment management table is changed to 1 indicating that it is in use (step 1
0004), and proceeds to step 10007. On the other hand, when the segment number> = 0 (step 10001), it is determined that the operation is to move the segment to the unused state,
The processing is continued at 06. In step 10006, the use status corresponding to the segment number is set to 0, which is not used, from the segment management table 2000, and the flow advances to step 10006. In step 10007, the segment utilization rate (the number of segments in use / the number of all segments) is calculated from the number of segments in use and the total number of segments using the items of the utilization state 2400 of the segment management table 2000, and the utilization rate is 90. %
Whether or not the above is determined. If it is 90% or more, the maintenance personnel is requested to add the magnetic disk storage device 1300 (step 10008), and the process is terminated. If the usage rate is 90% or less, the process is terminated as it is. The threshold value of 90% of the utilization rate can be variably changed by the maintenance personnel depending on the reliability of the system. With the above, the segment management unit 1
The description of the operation of volume usage status management 233 is ended.

【0031】次に、磁気ディスク記憶装置1300の追
加・削除の動作を図11を用いて説明する。ボリューム
追加・削除の動作をステップ11001で判断する。追
加の場合はステップ11005へ進み、削除の場合はス
テップ11002へ進む。磁気ディスク記憶装置130
0の追加の場合、ステップ11005で磁気ディスク記
憶装置1300の容量を確認する(ステップ1100
5)。確認された容量を元にセグメントの数ならびに大
きさを決定する(ステップ11006)。セグメントの
数並びに大きさは、固定値もしくは保守員による指定さ
れる値のどちらでもよい。この値を元にセグメント管理
表2000の最後尾へ、磁気ディスク記憶装置1300
の追加毎に、ディスク ID2100、セグメントのセ
グメント番号2200、開始位置2300、セグメント
の大きさ2400、そして、利用状況2500として未
使用を表す0を挿入して(ステップ11007)、処理
を終了する。
Next, the operation of adding / deleting the magnetic disk storage device 1300 will be described with reference to FIG. The operation of volume addition / deletion is determined in step 11001. In the case of addition, the process proceeds to step 11005, and in the case of deletion, the process proceeds to step 11002. Magnetic disk storage device 130
If 0 is added, the capacity of the magnetic disk storage device 1300 is confirmed in step 11005 (step 1100).
5). The number and size of segments are determined based on the confirmed capacity (step 11006). The number and size of the segments may be fixed values or values specified by maintenance personnel. Based on this value, the magnetic disk storage device 1300 is added to the end of the segment management table 2000.
For each addition, the disk ID 2100, the segment number 2200 of the segment, the start position 2300, the segment size 2400, and 0 indicating the unused state are inserted as the usage status 2500 (step 11007), and the processing ends.

【0032】一方、ボリューム削除の場合、該当のセグ
メント番号のセグメントが未使用セグメントか否かを判
断する(ステップ11002)。未使用セグメントであ
る場合、セグメント管理表2000よりそのセグメント
番号の列を削除する(ステップ11003)。該当セグ
メントが未使用セグメントでない場合(ステップ 11
002)、エラーとして戻し、処理を終える(ステップ
11004)。
On the other hand, in the case of volume deletion, it is judged whether the segment of the corresponding segment number is an unused segment (step 11002). If it is an unused segment, the column of that segment number is deleted from the segment management table 2000 (step 11003). If the applicable segment is not an unused segment (Step 11)
002), it is returned as an error and the processing is terminated (step 11004).

【0033】以上で、セグメント管理部1233のセグ
メント追加・削除の動作について説明を終了する。セグ
メント管理部1233は、以上で説明された手順でセグ
メントの使用状況の管理と追加・削除の動作を行う。
This completes the description of the segment addition / deletion operation of the segment management unit 1233. The segment management unit 1233 manages the usage status of segments and performs addition / deletion operations according to the procedure described above.

【0034】I/O処理部1234の動作処理を図12
を用いて説明する。まずI/O監視部1231よりI/
O処理部1234へ送られたI/O要求はI/O要求の
LBAを物理アドレスへ変換することを物理論理アドレ
ス管理部1235へ要求する(ステップ12001)。
次に、I/O要求の種別を判別する(ステップ1200
2)。リード I/Oの場合、物理アドレスを用いて磁気
ディスク記憶装置1300よりデータを読み出し(ステ
ップ12003)、読み出されたデータをホスト110
0に戻す(ステップ12004)。ライト I/Oの場
合、物理アドレスを用いて磁気ディスク記憶装置130
0へデータを書き込み(ステップ12005)、書き込
みが完了したことをホスト1100に通知する(ステッ
プ12006)。以上でI/O処理部1234の動作を
手順の説明を終了する。
FIG. 12 shows the operation process of the I / O processing unit 1234.
Will be explained. First, I / O monitoring unit 1231
The I / O request sent to the O processing unit 1234 requests the physical / logical address management unit 1235 to convert the LBA of the I / O request into a physical address (step 12001).
Next, the type of I / O request is determined (step 1200).
2). In the case of read I / O, data is read from the magnetic disk storage device 1300 using the physical address (step 12003), and the read data is read by the host 110.
It is returned to 0 (step 12004). In the case of write I / O, the magnetic disk storage device 130 using the physical address
Data is written to 0 (step 12005), and the host 1100 is notified of the completion of writing (step 12006). This is the end of the description of the procedure of the operation of the I / O processing unit 1234.

【0035】物理論理アドレス管理部1235の動作は
2つの動作に分かれる。まず、I/O処理部1234か
ら要求される物理論理アドレス変換手順である。この変
換手順を図13を用いて説明し、実際の物理アドレスと
論理アドレスとの物理論理間の構造を図14を用いて説
明する。変換の際には次の規則を使う。まず、I/O要
求のターゲットとなっているLUNに対するセグメント
群を選ぶ(ステップ13001)。LBAから物理側の
ディスク番号とLBAを算出する(ステップ1300
2)。
The operation of the physical / logical address management unit 1235 is divided into two operations. First, a physical / logical address conversion procedure requested by the I / O processing unit 1234. This conversion procedure will be described with reference to FIG. 13, and the physical-logical structure between the actual physical address and the logical address will be described with reference to FIG. Use the following rules when converting: First, a segment group for the LUN that is the target of the I / O request is selected (step 13001). The physical disk number and LBA are calculated from the LBA (step 1300).
2).

【0036】算出する手順は、まず、ターゲットのLU
Nが属する複数のセグメント群からI/O要求に記載さ
れているLBAtargetを元に物理論理管理表3000か
ら各セグメントの開始LBAを参照してLBAtarget
(14300)がアクセスするセグメント番号(SN)を
選ぶ。判明したセグメント番号SNよりセグメント管理表
2000を用いて、LBAtargetが(14300)アク
セスするディスクID、セグメントの磁気ディスク装置
の先頭から物理アドレスを割り出す。N番目のセグメン
トの先頭物理アドレスLBAN(14003)からデー
タが操作されるセグメント上のアドレスはLBAtarget
−LBANであるので、磁気ディスク記憶装置1300
の先頭からセグメントの物理アドレスは、(セグメント
の先頭LBA LBAsegstart)+(LBA−LBAN)
(14005)である。I/O処理部1234へディス
クID2100、ディスクID2100の磁気ディスク
記憶装置1300のLBAである(セグメントの先頭L
BA LBAsegstart)+(LBA−LBAN)(140
05)を戻す(ステップ13003)。
The calculation procedure is as follows. First, the target LU
Based on the LBA target described in the I / O request from the plurality of segment groups to which N belongs, refer to the starting LBA of each segment from the physical logical management table 3000 and the LBA target
(14300) selects the segment number (SN) to access. The segment management table 2000 is used from the determined segment number SN to determine the disk ID accessed by the LBA target (14300) and the physical address from the head of the magnetic disk device of the segment. The address on the segment where data is operated from the first physical address LBAN (14003) of the Nth segment is LBAtarget
Since it is LBAN, the magnetic disk storage device 1300
The physical address of the segment from the beginning of (segment start LBA LBAsegstart) + (LBA-LBAN)
(14005). It is the LBA of the magnetic disk storage device 1300 having the disk ID 2100 and the disk ID 2100 to the I / O processing unit 1234 (the start L of the segment).
BA LBAsegstart) + (LBA-LBAN) (140
05) is returned (step 13003).

【0037】もう一つの物理論理アドレス管理部123
5の動作は、ボリュームの物理論理管理表3000への
追加と削除である。この動作を図15を用いて説明す
る。物理論理管理表内のLUNを選択する(ステップ1
5001)。ボリュームの追加の際(ステップ1500
2)、容量増減部1232より追加されるセグメント番
号が与えられ、追加されるLUNボリュームにおいてセ
グメント列の最後尾にセグメントを追加する(ステップ
15003)。この際、ホスト1100から追加された
セグメントの見え方は、LBAは、LBAN(1400
3)からLBAN+SIZEN(14004)のアドレ
ス間に追加ボリュームが存在する。ボリュームを削除す
る際には(ステップ15002)、容量増減部1232
よりmLBA分が削除される命令を受けた後、削除され
るLUNボリューム内のセグメント列の最後尾よりセグ
メント単位毎にmLBA分の容量を削除する(ステップ
15004)。削除されたセグメントはセグメント番号
を容量増減部1232へ戻す(ステップ15005)。
以上で物理論理アドレス管理部1235の動作の説明を
終了する。
Another physical logical address management unit 123
The operation of No. 5 is addition and deletion of a volume to the physical logical management table 3000. This operation will be described with reference to FIG. Select a LUN in the physical logical management table (step 1
5001). When adding a volume (step 1500
2) The added segment number is given from the capacity increase / decrease unit 1232, and the segment is added to the end of the segment column in the added LUN volume (step 15003). At this time, the appearance of the segment added from the host 1100 is that the LBA is LBAN (1400
An additional volume exists between the addresses 3) to LBAN + SIZE (14004). When deleting a volume (step 15002), the capacity increasing / decreasing unit 1232
After receiving the instruction to delete more mLBA, the capacity of mLBA is deleted for each segment unit from the end of the segment column in the LUN volume to be deleted (step 15004). The deleted segment returns the segment number to the capacity increasing / decreasing unit 1232 (step 15005).
This is the end of the description of the operation of the physical logical address management unit 1235.

【0038】ホスト1100の命令部1132は、アプ
リケーション1110側で使用するボリューム内のデー
タの容量を縮小した後、アプリケーションからもしくは
ユーザから指示を受け、ボリュームサーバ1200から
提供される論理ボリュームの記憶領域をセグメント単位
毎に縮小する命令をI/F1140経由でボリュームサ
ーバ1200へ命令するプログラムである。図16を用
いて、この動作を説明する。
The command section 1132 of the host 1100 reduces the capacity of the data in the volume used on the application 1110 side, and then receives an instruction from the application or the user to set the storage area of the logical volume provided from the volume server 1200. It is a program for instructing the volume server 1200 via the I / F 1140 to reduce the size of each segment. This operation will be described with reference to FIG.

【0039】まず、アプリケーション1110からボリ
ュームのmLBA分の縮小の要求を受ける(ステップ1
6001)。命令部1132では、OS1130の下で
管理されている論理ボリュームの論理区画情報の最終ブ
ロック位置をmLBA分縮小する(ステップ1600
2)。命令部1132より容量がmLBA分のボリュー
ムをボリュームサーバの容量増減部1232へ発行する
(ステップ16003)。容量増減部1232はボリュ
ーム縮小処理を行い(ステップ16004)、ホスト1
100側にその結果を戻す。以上で命令部1132の動
作の説明を終了する。
First, the application 1110 receives a request to reduce the volume by mLBA (step 1).
6001). The command unit 1132 reduces the final block position of the logical partition information of the logical volume managed under the OS 1130 by mLBA (step 1600).
2). The command unit 1132 issues a volume having a capacity of mLBA to the capacity increasing / decreasing unit 1232 of the volume server (step 16003). The capacity increase / decrease unit 1232 performs volume reduction processing (step 16004), and the host 1
The result is returned to 100 side. This is the end of the description of the operation of the instruction unit 1132.

【0040】次に、アプリケーション1110との連携
動作を示す。前述したように、ホスト1100はボリュ
ームサーバ1200から提供される論理ボリュームを既
存のボリュームとして取扱うことができるが、ボリュー
ムサーバ1200側でLUNが示すボリュームが保持し
ているセグメント以上のボリュームへのアクセスが生じ
た時に、ボリュームがセグメント管理部1233より追
加される。この動作は、前述したボリューム提供部12
30の動作と同じである。
Next, the cooperative operation with the application 1110 will be described. As described above, the host 1100 can handle the logical volume provided from the volume server 1200 as an existing volume, but the volume server 1200 side cannot access a volume that is larger than the segment held by the volume indicated by the LUN. When it occurs, the volume is added by the segment management unit 1233. This operation is performed by the volume providing unit 12 described above.
This is the same as the operation of 30.

【0041】一方、アプリケーション1110が自ら拡
張したボリュームの容量整理等を行い、実際のアプリケ
ーション1110で使用されている容量が減った時に
は、ホスト1100の命令部1132へ、アプリケーシ
ョン1110側で、削減前後における差分の容量を伝
え、前述のホスト1100の命令部1132経由でのボ
リュームサーバでの前述のボリューム縮小手順(図1
6)を実行する。これらの手順で、ボリュームサーバで
使用中のセグメント数をアプリケーション1110の動
作にあわせて適切な論理ボリューム容量を提供できる。
<第二の実施例>第一の実施例では、ホスト1100
が、ボリュームサーバ1300から提供される論理ボリ
ュームの記憶領域外へライトI/Oアクセスが発生時に、
ボリュームサーバ1200が逐次記憶領域を割り当てる
ことによって、ボリュームサーバ1200から提供され
る論理ボリュームへの記憶領域拡張を実施した。第二の
実施例では、アプリケーション1110の指示によって
ホスト1100の命令部1300経由で予め論理ボリュ
ームの記憶容量拡張を行い、OS1130によって論理
ボリュームの記憶容量の大きさを認知した上でアプリケ
ーション1110に利用可能にする。この手順について
図18を用いて説明する。
On the other hand, when the application 1110 sorts out the capacity of the expanded volume by itself and the capacity used by the actual application 1110 is reduced, the command section 1132 of the host 1100 is notified to the application 1110 side before and after the reduction. The difference volume capacity is transmitted, and the volume reduction procedure described above is performed by the volume server via the command section 1132 of the host 1100 (see FIG. 1).
Perform 6). With these procedures, it is possible to provide an appropriate logical volume capacity according to the number of segments in use in the volume server according to the operation of the application 1110.
<Second Embodiment> In the first embodiment, the host 1100
However, when a write I / O access occurs outside the storage area of the logical volume provided by the volume server 1300,
The volume server 1200 allocates storage areas sequentially to expand the storage area to the logical volume provided by the volume server 1200. In the second embodiment, the storage capacity of the logical volume is expanded in advance via the command unit 1300 of the host 1100 according to an instruction from the application 1110, and the OS 1130 can recognize the size of the storage capacity of the logical volume and then use the application 1110. To This procedure will be described with reference to FIG.

【0042】まず、ホスト1000の命令部1132は
アプリケーション1110からlLBAの記憶領域の拡
張要求を受け取る(ステップ18001)。ホスト11
00の命令部1132は、該当論理ボリュームの全容量
と拡張領域分mLBAの合算したLBAへライトI/Oを
発行する。ボリュームサーバ1200のI/O監視部1
231は、ボリュームサーバが提供しているボリューム
よりmLBA分拡張しているので容量増減部1232へ
の容量拡張処理を行う(ステップ18003)。ライト
I/Oが成功して記憶領域が増加した場合、ステップ1
8005を行い、失敗したときには記憶領域拡張を行わ
ず処理は終了する。ステップ18005ではホスト11
00の命令部1132は、ボリュームサーバ1200か
ら提供される該当論理ボリュームに対するOS1130
の論理区画情報の終了ブロック数をmLBA分増加す
る。以上で、アプリケーション1110経由でボリュー
ムサーバ1200から提供される論理ボリュームの記憶
領域拡張手順について説明を終了する。
First, the command section 1132 of the host 1000 receives an expansion request for the storage area of the LLBA from the application 1110 (step 18001). Host 11
The command unit 1132 of 00 issues a write I / O to the LBA in which the total capacity of the relevant logical volume and the extension area mLBA are added. I / O monitoring unit 1 of volume server 1200
Since the volume 231 has expanded the volume provided by the volume server by the amount of mLBA, the capacity expansion processing to the capacity increase / decrease unit 1232 is performed (step 18003). If the write I / O succeeds and the storage area increases, step 1
If 8005 is performed and the operation fails, the storage area is not extended and the process ends. In step 18005, host 11
The command part 1132 of 00 is the OS 1130 for the corresponding logical volume provided from the volume server 1200.
The end block number of the logical partition information of is increased by mLBA. This is the end of the description of the logical volume storage area expansion procedure provided from the volume server 1200 via the application 1110.

【0043】[0043]

【発明の効果】本発明によれば、ボリュームサーバの要
求に応じて記憶領域をボリュームサーバに付加すること
により、ホスト計算機のアプリケーションは、容量を動
的に伸縮可能な単一ボリュームを利用できる。
According to the present invention, by adding the storage area to the volume server in response to the request of the volume server, the application of the host computer can use a single volume whose capacity can be dynamically expanded and contracted.

【図面の簡単な説明】[Brief description of drawings]

【図1】記憶装置システムの構成図。FIG. 1 is a configuration diagram of a storage device system.

【図2】セグメント管理表2000を示す図。FIG. 2 is a diagram showing a segment management table 2000.

【図3】物理論理管理表3000を示す図。FIG. 3 is a diagram showing a physical logical management table 3000.

【図4】LUN0(4000)とセグメント1(341
0)、セグメント2(3420)、セグメント3(34
10)の論理構造関係を示す図。
FIG. 4: LUN 0 (4000) and segment 1 (341)
0), segment 2 (3420), segment 3 (34
The figure which shows the logical structure relationship of 10).

【図5】ホスト1100とボリュームサーバ1200間
で処理されるI/Oの動作フロー。
FIG. 5 is an operation flow of I / O processed between the host 1100 and the volume server 1200.

【図6】I/O監視部1231の動作フロー。FIG. 6 is an operation flow of an I / O monitoring unit 1231.

【図7】容量増減部1232の動作フロー。FIG. 7 is an operation flow of the capacity increasing / decreasing unit 1232.

【図8】セグメント管理部1233、容量増減部123
2、物理論理アドレス管理部1235間のボリューム拡
張処理の動作フロー。
FIG. 8 is a segment management unit 1233 and a capacity increasing / decreasing unit 123.
2. Operation flow of volume expansion processing between the physical and logical address management units 1235.

【図9】セグメント管理部1233、容量増減部123
2、物理論理アドレス管理部1235間のボリューム縮
小処理の動作フロー。
FIG. 9 is a segment management unit 1233 and a capacity increasing / decreasing unit 123.
2. Operation flow of volume reduction processing between the physical and logical address management units 1235.

【図10】セグメント管理部1233のセグメント使用
状況管理の動作フロー。
FIG. 10 is an operation flow of segment usage status management of the segment management unit 1233.

【図11】セグメント管理部1233のディスク追加・
削除時の動作フロー。
FIG. 11: Adding a disk to the segment management unit 1233
Operation flow when deleting.

【図12】I/O処理部1234の動作フロー。FIG. 12 is an operation flow of the I / O processing unit 1234.

【図13】物理論理アドレス管理部1235の物理論理
アドレス変換の動作フロー。
FIG. 13 is an operation flow of physical / logical address conversion by the physical / logical address management unit 1235.

【図14】LUN14000、セグメント14201と
セグメント14202、磁気ディスク記憶装置1410
0間の論理構造関係を示す図。
FIG. 14 shows a LUN 14000, a segment 14201 and a segment 14202, a magnetic disk storage device 1410.
The figure which shows the logical structure relationship between 0.

【図15】物理論理アドレス管理部1235のセグメン
トの物理論理管理表への追加削除時の動作フロー。
FIG. 15 is an operation flow when a segment of the physical / logical address management unit 1235 is added / deleted to / from the physical / logical management table.

【図16】ホスト1100内の命令部1132とボリュ
ームサーバ1200内の容量増減部1232間の論理ボ
リューム記憶容量拡張時の動作フロー。
FIG. 16 is an operation flow at the time of expanding the logical volume storage capacity between the command section 1132 in the host 1100 and the capacity increasing / decreasing section 1232 in the volume server 1200.

【図17】I/Oコマンドの物理フォーマットを示す
図。
FIG. 17 is a diagram showing a physical format of an I / O command.

【図18】ホスト1100内の命令部1132とボリュ
ームサーバ1200内の容量増減部1232間の論理ボ
リューム記憶容量拡張時の動作フロー。
FIG. 18 is an operation flow at the time of expanding the logical volume storage capacity between the command section 1132 in the host 1100 and the capacity increasing / decreasing section 1232 in the volume server 1200.

【符号の説明】[Explanation of symbols]

1100:ホスト、1110:アプリケーション、11
30:オペレーティングシステム(OS)、1131:
ボリュームデバイス部、1132:命令部、1140:
チャネルインターフェイス、1200:ボリュームサー
バ、1210:チャネルインターフェイス、1220:
チャネルインターフェイス、1230:ボリューム提供
部、1231:I/O監視部、1232:容量増減部、
1233:セグメント管理部、1234:I/O処理
部、1235:物理論理アドレス管理部、1236:ボ
リューム提供部、1300:磁気ディスク記憶装置
1100: host, 1110: application, 11
30: Operating system (OS), 1131:
Volume device part, 1132: command part, 1140:
Channel Interface, 1200: Volume Server, 1210: Channel Interface, 1220:
Channel interface, 1230: volume providing unit, 1231: I / O monitoring unit, 1232: capacity increasing / decreasing unit,
1233: segment management unit, 1234: I / O processing unit, 1235: physical logical address management unit, 1236: volume providing unit, 1300: magnetic disk storage device

───────────────────────────────────────────────────── フロントページの続き (72)発明者 荒井 弘治 神奈川県小田原市国府津2880番地 株式会 社日立製作所ストレージ事業部内 Fターム(参考) 5B082 CA17 CA20    ─────────────────────────────────────────────────── ─── Continued front page    (72) Inventor Koji Arai             2880 Kozu, Odawara City, Kanagawa Stock Association             Company Hitachi Ltd. Storage Division F-term (reference) 5B082 CA17 CA20

Claims (5)

【特許請求の範囲】[Claims] 【請求項1】少なくとも1台のホスト計算機及び少なく
とも1台のディスク記憶装置に接続されたボリューム提
供装置における容量自動拡張方法は、 前記ホスト計算機から論理ボリュームへのI/O要求を
受け付け、 前記I/O要求のアクセス対象の論理ブロックアドレス
を読み取り、 前記I/O要求がアクセスした論理ブロックアドレスの
記憶領域が論理ボリューム上に存在しない場合、未使用
ディスク記憶装置から記憶領域を割り当て、動的に論理
ボリュームの記憶領域を拡張することを特徴とする記憶
装置の容量自動拡張方法。
1. A capacity automatic expansion method in a volume providing apparatus connected to at least one host computer and at least one disk storage device, comprising: accepting an I / O request to a logical volume from the host computer; The logical block address to be accessed by the I / O request is read, and if the storage area of the logical block address accessed by the I / O request does not exist in the logical volume, the storage area is allocated from an unused disk storage device and dynamically A method for automatically expanding the capacity of a storage device, which comprises expanding the storage area of a logical volume.
【請求項2】少なくとも1台のホスト計算機及び少なく
とも1台のディスク記憶装置に接続されたボリューム提
供装置における容量自動拡張方法は、 前記ホスト計算機から論理ボリュームの縮小要求を受け
付け、 前記縮小要求の対象となる論理ブロックアドレスを読み
取り、 前記縮小要求が指定した論理ブロックアドレスの記憶領
域を縮小することを特徴とする記憶装置の容量自動拡張
方法。
2. A method for automatically expanding capacity in a volume providing device connected to at least one host computer and at least one disk storage device, comprising: accepting a logical volume reduction request from the host computer; A method for automatically expanding the capacity of a storage device, comprising: reading a logical block address to be reduced, and reducing the storage area of the logical block address designated by the reduction request.
【請求項3】アプリケーションからの指示に基づいて論
理ボリュームの記憶領域を拡張することを特徴とする請
求項1記載の記憶装置の容量自動拡張方法。
3. A method for automatically expanding the capacity of a storage device according to claim 1, wherein the storage area of the logical volume is expanded based on an instruction from an application.
【請求項4】アプリケーションからの指示に基づいて論
理ボリュームの記憶領域を縮小することを特徴とする請
求項2記載の記憶装置の容量自動拡張方法。
4. The automatic capacity expansion method for a storage device according to claim 2, wherein the storage area of the logical volume is reduced based on an instruction from an application.
【請求項5】少なくとも1台のホスト計算機及び少なく
とも1台のディスク記憶装置に接続されたボリューム提
供装置は、 前記ホスト計算機から論理ボリュームへのI/O要求を
受け付ける手段、 前記I/O要求のアクセス対象の論理ブロックアドレス
を読み取る手段、 前記I/O要求がアクセスした論理ブロックアドレスの
記憶領域が論理ボリューム上に存在しない場合、未使用
ディスク記憶装置から記憶領域を割り当て、動的に論理
ボリュームの記憶領域を拡張する手段を有することを特
徴とするボリューム提供装置。
5. A volume providing device connected to at least one host computer and at least one disk storage device, means for receiving an I / O request from the host computer to a logical volume, Means for reading the logical block address of the access target; if the storage area of the logical block address accessed by the I / O request does not exist in the logical volume, the storage area is allocated from an unused disk storage device and the logical volume A volume providing apparatus comprising means for expanding a storage area.
JP2001204305A 2001-07-05 2001-07-05 Volume controller Expired - Lifetime JP4175788B2 (en)

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US09/931,253 US6725328B2 (en) 2001-07-05 2001-08-17 Automated on-line capacity expansion method for storage device
US10/782,787 US6836819B2 (en) 2001-07-05 2004-02-23 Automated on-line capacity expansion method for storage device
US10/991,421 US7447832B2 (en) 2001-07-05 2004-11-19 Automated on-line capacity expansion method for storage device
US12/245,122 US7930474B2 (en) 2001-07-05 2008-10-03 Automated on-line capacity expansion method for storage device
US12/876,325 US8028127B2 (en) 2001-07-05 2010-09-07 Automated on-line capacity expansion method for storage device
US13/230,097 US8266375B2 (en) 2001-07-05 2011-09-12 Automated on-line capacity expansion method for storage device

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US20040162958A1 (en) 2004-08-19
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US8028127B2 (en) 2011-09-27
US6836819B2 (en) 2004-12-28
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US7930474B2 (en) 2011-04-19
US6725328B2 (en) 2004-04-20
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US7447832B2 (en) 2008-11-04
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